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Reconstruction of Exposure to m-Xylene from Human Biomonitoring Data Using PBPK Modelling, Bayesian Inference, and Markov Chain Monte Carlo Simulation

There are numerous biomonitoring programs, both recent and ongoing, to evaluate environmental exposure of humans to chemicals. Due to the lack of exposure and kinetic data, the correlation of biomarker levels with exposure concentrations leads to difficulty in utilizing biomonitoring data for biolog...

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Autores principales: McNally, Kevin, Cotton, Richard, Cocker, John, Jones, Kate, Bartels, Mike, Rick, David, Price, Paul, Loizou, George
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Hindawi Publishing Corporation 2012
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3376947/
https://www.ncbi.nlm.nih.gov/pubmed/22719759
http://dx.doi.org/10.1155/2012/760281
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author McNally, Kevin
Cotton, Richard
Cocker, John
Jones, Kate
Bartels, Mike
Rick, David
Price, Paul
Loizou, George
author_facet McNally, Kevin
Cotton, Richard
Cocker, John
Jones, Kate
Bartels, Mike
Rick, David
Price, Paul
Loizou, George
author_sort McNally, Kevin
collection PubMed
description There are numerous biomonitoring programs, both recent and ongoing, to evaluate environmental exposure of humans to chemicals. Due to the lack of exposure and kinetic data, the correlation of biomarker levels with exposure concentrations leads to difficulty in utilizing biomonitoring data for biological guidance values. Exposure reconstruction or reverse dosimetry is the retrospective interpretation of external exposure consistent with biomonitoring data. We investigated the integration of physiologically based pharmacokinetic modelling, global sensitivity analysis, Bayesian inference, and Markov chain Monte Carlo simulation to obtain a population estimate of inhalation exposure to m-xylene. We used exhaled breath and venous blood m-xylene and urinary 3-methylhippuric acid measurements from a controlled human volunteer study in order to evaluate the ability of our computational framework to predict known inhalation exposures. We also investigated the importance of model structure and dimensionality with respect to its ability to reconstruct exposure.
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spelling pubmed-33769472012-06-20 Reconstruction of Exposure to m-Xylene from Human Biomonitoring Data Using PBPK Modelling, Bayesian Inference, and Markov Chain Monte Carlo Simulation McNally, Kevin Cotton, Richard Cocker, John Jones, Kate Bartels, Mike Rick, David Price, Paul Loizou, George J Toxicol Research Article There are numerous biomonitoring programs, both recent and ongoing, to evaluate environmental exposure of humans to chemicals. Due to the lack of exposure and kinetic data, the correlation of biomarker levels with exposure concentrations leads to difficulty in utilizing biomonitoring data for biological guidance values. Exposure reconstruction or reverse dosimetry is the retrospective interpretation of external exposure consistent with biomonitoring data. We investigated the integration of physiologically based pharmacokinetic modelling, global sensitivity analysis, Bayesian inference, and Markov chain Monte Carlo simulation to obtain a population estimate of inhalation exposure to m-xylene. We used exhaled breath and venous blood m-xylene and urinary 3-methylhippuric acid measurements from a controlled human volunteer study in order to evaluate the ability of our computational framework to predict known inhalation exposures. We also investigated the importance of model structure and dimensionality with respect to its ability to reconstruct exposure. Hindawi Publishing Corporation 2012 2012-04-08 /pmc/articles/PMC3376947/ /pubmed/22719759 http://dx.doi.org/10.1155/2012/760281 Text en Copyright © 2012 Kevin McNally et al. https://creativecommons.org/licenses/by/3.0/ This is an open access article distributed under the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Article
McNally, Kevin
Cotton, Richard
Cocker, John
Jones, Kate
Bartels, Mike
Rick, David
Price, Paul
Loizou, George
Reconstruction of Exposure to m-Xylene from Human Biomonitoring Data Using PBPK Modelling, Bayesian Inference, and Markov Chain Monte Carlo Simulation
title Reconstruction of Exposure to m-Xylene from Human Biomonitoring Data Using PBPK Modelling, Bayesian Inference, and Markov Chain Monte Carlo Simulation
title_full Reconstruction of Exposure to m-Xylene from Human Biomonitoring Data Using PBPK Modelling, Bayesian Inference, and Markov Chain Monte Carlo Simulation
title_fullStr Reconstruction of Exposure to m-Xylene from Human Biomonitoring Data Using PBPK Modelling, Bayesian Inference, and Markov Chain Monte Carlo Simulation
title_full_unstemmed Reconstruction of Exposure to m-Xylene from Human Biomonitoring Data Using PBPK Modelling, Bayesian Inference, and Markov Chain Monte Carlo Simulation
title_short Reconstruction of Exposure to m-Xylene from Human Biomonitoring Data Using PBPK Modelling, Bayesian Inference, and Markov Chain Monte Carlo Simulation
title_sort reconstruction of exposure to m-xylene from human biomonitoring data using pbpk modelling, bayesian inference, and markov chain monte carlo simulation
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3376947/
https://www.ncbi.nlm.nih.gov/pubmed/22719759
http://dx.doi.org/10.1155/2012/760281
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